Build practical skills in credit default prediction with Python by learning how to prepare data, develop classification models, and evaluate predictive performance for financial risk analysis. In this course, you will follow a structured workflow that begins with importing datasets and libraries, preprocessing data, handling missing values, encoding categorical features, scaling numerical variables, and performing exploratory data analysis (EDA) to uncover meaningful patterns.

Credit Default Prediction with Python: Apply & Analyze

Credit Default Prediction with Python: Apply & Analyze

Instructor: EDUCBA
Access provided by Universidade Federal de Santa Catarina
Gain insight into a topic and learn the fundamentals.
6 hours to complete
Flexible schedule
Learn at your own pace
What you'll learn
Preprocess financial datasets using encoding, scaling, and EDA techniques.
Build and tune logistic regression, decision trees, and Random Forest models.
Evaluate credit risk models with confusion matrices, ROC curves, and ensemble methods.
Skills you'll gain
- Data-Driven Decision-Making
- Feature Engineering
- Financial Analysis
- Model Evaluation
- Predictive Modeling
- Performance Analysis
- Data Preprocessing
- Model Optimization
- Risk Analysis
- Logistic Regression
- Predictive Analytics
- Applied Machine Learning
- Risk Modeling
- Exploratory Data Analysis
- Credit Risk
- Decision Tree Learning
- Data Analysis
- Machine Learning Methods
- Model Training
Details to know

Shareable certificate
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Assessments
6 assignments
Taught in English
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